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基于氧化锌的化学电阻器高温乙醇传感机制的新见解

New Insights towards High-Temperature Ethanol-Sensing Mechanism of ZnO-Based Chemiresistors.

作者信息

Piliai Lesia, Tomeček David, Hruška Martin, Khalakhan Ivan, Nováková Jaroslava, Fitl Přemysl, Yatskiv Roman, Grym Jan, Vorokhta Mykhailo, Matolínová Iva, Vrňata Martin

机构信息

Department of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, V Holešovičkách 2, 180 00 Prague 8, Czech Republic.

Department of Physics and Measurements, University of Chemistry and Technology Prague, Technická 5, 166 28 Prague 6, Czech Republic.

出版信息

Sensors (Basel). 2020 Sep 30;20(19):5602. doi: 10.3390/s20195602.

Abstract

In this work, we investigate ethanol (EtOH)-sensing mechanisms of a ZnO nanorod (NRs)-based chemiresistor using a near-ambient-pressure X-ray photoelectron spectroscopy (NAP-XPS). First, the ZnO NRs-based sensor was constructed, showing good performance on interaction with 100 ppm of EtOH in the ambient air at 327 °C. Then, the same ZnO NRs film was investigated by NAP-XPS in the presence of 1 mbar oxygen, simulating the ambient air atmosphere and O/EtOH mixture at the same temperature. The partial pressure of EtOH was 0.1 mbar, which corresponded to the partial pressure of 100 ppm of analytes in the ambient air. To better understand the EtOH-sensing mechanism, the NAP-XPS spectra were also studied on exposure to O/EtOH/HO and O/MeCHO (MeCHO = acetaldehyde) mixtures. Our results revealed that the reaction of EtOH with chemisorbed oxygen on the surface of ZnO NRs follows the acetaldehyde pathway. It was also demonstrated that, during the sensing process, the surface becomes contaminated by different products of MeCHO decomposition, which decreases dc-sensor performance. However, the ac performance does not seem to be affected by this phenomenon.

摘要

在这项工作中,我们使用近常压X射线光电子能谱(NAP-XPS)研究了基于ZnO纳米棒(NRs)的化学电阻器的乙醇(EtOH)传感机制。首先,构建了基于ZnO NRs的传感器,该传感器在327°C的环境空气中与100 ppm的EtOH相互作用时表现出良好的性能。然后,在1 mbar氧气存在的情况下,通过NAP-XPS对相同的ZnO NRs薄膜进行了研究,模拟了相同温度下的环境空气气氛和O/EtOH混合物。EtOH的分压为0.1 mbar,这与环境空气中100 ppm分析物的分压相对应。为了更好地理解EtOH传感机制,还研究了暴露于O/EtOH/H₂O和O/MeCHO(MeCHO = 乙醛)混合物时的NAP-XPS光谱。我们的结果表明,EtOH与ZnO NRs表面化学吸附的氧的反应遵循乙醛途径。还证明了,在传感过程中,表面被MeCHO分解的不同产物污染,这会降低直流传感器的性能。然而,交流性能似乎不受此现象影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b57/7582869/62e7366f2609/sensors-20-05602-g001.jpg

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